TY - JOUR
T1 - Multi-modal assessment of recycled Polyethylene Terephthalate composites in additive manufacturing: the role of carbon fibre
AU - Charkieh, Ahmad Shawki
AU - Zhu, Yifan
AU - Huysman, Sofie
AU - Polyzos, Efstratios
AU - Quaak, Astrid
AU - Pien, Nele
AU - Carpentier, Nathan
AU - Boone, Matthieu
AU - Pyl, Lincy
N1 - Funding Information:
The authors acknowledge the support of the Agency for Innovation and Entrepreneurship Flanders (VLAIO), Belgium via research project: PET2VALUE.
Funding Information:
A. Quaak and N. Pien would like to acknowledge the financial support of the Research Foundation Flanders (FWO) under the form of an FWO SB PhD fellowships (1SHDP24N) \u2010 (12E4523N), respectively.
Publisher Copyright:
© 2025 Society of Plastics Engineers.
PY - 2025/2/19
Y1 - 2025/2/19
N2 - With the growing interest in sustainable manufacturing, 3D printing with recycled Polyethylene Terephthalate (rPET) offers an innovative approach to upcycling waste. This study explores the potential of combining rPET with milled short carbon fibers and polymer chain extenders to produce high-performance 3D printing filaments through melt extrusion. Filaments containing 5% and 10% carbon fiber, with and without sizing, along with a polymer chain extender, were investigated to enhance viscosity and material properties of rPET. Thermal analysis techniques evaluated the material's thermal stability and transitions, assessing the degradation temperature and calorimetric properties including glass transition and melting temperatures, while the measured carbon fiber content closely matched the theoretical content. Tensile testing of unidirectionally printed samples showed promising mechanical properties. X-ray micro-computed tomography assessed fiber length in extruded filaments, comparing it with the target length set during manufacturing, showing agreement. Scanning electron microscopy examined fracture and side surfaces, revealing governing failure mechanisms and defects, attributed to filament production and composition. This study highlights the synergistic role of carbon fiber sizing and chain extenders in enhancing tensile modulus, while improving overall consistency and quality of extruded filaments. It presents a groundbreaking pathway for sustainable, high-performance additive manufacturing. Highlights: Investigated the synergistic effect of CF sizing and chain extenders in rPET. Melt extrusion achieved 10% CF with excellent fiber alignment and integrity. Additives enhanced thermal stability, crystallization, and adhesion. SEM and Micro-CT revealed improved fiber-matrix bonding and fewer defects. Tensile modulus doubled through synergy of CF sizing and chain extenders.
AB - With the growing interest in sustainable manufacturing, 3D printing with recycled Polyethylene Terephthalate (rPET) offers an innovative approach to upcycling waste. This study explores the potential of combining rPET with milled short carbon fibers and polymer chain extenders to produce high-performance 3D printing filaments through melt extrusion. Filaments containing 5% and 10% carbon fiber, with and without sizing, along with a polymer chain extender, were investigated to enhance viscosity and material properties of rPET. Thermal analysis techniques evaluated the material's thermal stability and transitions, assessing the degradation temperature and calorimetric properties including glass transition and melting temperatures, while the measured carbon fiber content closely matched the theoretical content. Tensile testing of unidirectionally printed samples showed promising mechanical properties. X-ray micro-computed tomography assessed fiber length in extruded filaments, comparing it with the target length set during manufacturing, showing agreement. Scanning electron microscopy examined fracture and side surfaces, revealing governing failure mechanisms and defects, attributed to filament production and composition. This study highlights the synergistic role of carbon fiber sizing and chain extenders in enhancing tensile modulus, while improving overall consistency and quality of extruded filaments. It presents a groundbreaking pathway for sustainable, high-performance additive manufacturing. Highlights: Investigated the synergistic effect of CF sizing and chain extenders in rPET. Melt extrusion achieved 10% CF with excellent fiber alignment and integrity. Additives enhanced thermal stability, crystallization, and adhesion. SEM and Micro-CT revealed improved fiber-matrix bonding and fewer defects. Tensile modulus doubled through synergy of CF sizing and chain extenders.
UR - http://www.scopus.com/inward/record.url?scp=85219669168&partnerID=8YFLogxK
U2 - 10.1002/pc.29658
DO - 10.1002/pc.29658
M3 - Article
JO - Polymer Composites
JF - Polymer Composites
SN - 0272-8397
ER -